[0001] This invention relates to improvements in electrical power assisted steering systems
of the kind in which an electrical motor is adapted to apply an assistance torque
to a steering component such as a steering column so as to reduce the driver effort
required to control the vehicle.
[0002] In a simple electric power assisted steering system a torque sensor is provided which
is arranged so that the level of torque in a steering column is measured. From this
measurement a controller calculates the value of a torque demand signal which is indicative
of the torque that is to be generated by an electric motor attached to the steering
column. The motor applies a torque to the column of the same sense as that demanded
by the driver and thus reduces the effort needed to turn the wheel.
[0003] A problem with this simple arrangement occurs in certain driving manoeuvres which
excite a vehicle yaw mode transient response - leading to so-called "fish-tailing"
of the vehicle. These manoeuvres are typically the result of "unsupported" driver
actions on the handwheel such as rotational "flicks" where the driver applies a rapid
handwheel angle change but does not follow it through with any substantial applied
torque or perhaps releases the handwheel after initiating a rapid turn.
[0004] In such circumstances it is desirable that the handwheel returns to the central "straight-ahead"
position quickly and with a minimum amount of overshoot or oscillation. In general,
however, geometric and inertial effects of the steering system contribute to a free
mode yaw response that is lightly damped and quite oscillatory - particularly at high
vehicle speeds.
[0005] It is known in the art to overcome this problem by including a damping component
within the torque demand signal that is used to drive the motor. This damping component
in some sense mimics the mechanical phenomenon of viscous friction through software
by generating a component of torque demand that is a function of the handwheel velocity.
The damping component may generally increase in magnitude as a function of steering
angular velocity from zero torque at zero rotational speed to a maximum at some arbitrary
maximum speed. In effect, the damping component reduces the actual torque output by
the motor, and hence the amount of assistance, in a particular instance when the velocities
are high.
[0006] In accordance with a first aspect the invention provides an electric power assisted
steering system comprising a steering mechanism which operatively connects a steering
wheel to the roadwheels of the vehicle, a torque sensing means adapted to produce
a first output signal indicative of the torque carried by a portion of the steering
mechanism, a means for producing a second output signal indicative of the angular
velocity of a portion of the steering mechanism, an electric motor operatively connected
to the steering mechanism, a signal processing unit adapted to receive the two signals
and to produce a torque demand signal representative of a torque to be applied to
the steering mechanism by the motor, and a motor drive stage adapted to provide a
drive current to the motor responsive to the torque demand signal, and in which the
torque demand signal includes a damping component that is dependent upon both the
first output signal and the second output signal.
[0007] By making the damping component a function of torque as well as angular velocity
of a portion of the steering mechanism, it has been found that the damping component
does not become intrusive during "hands-on" slalom manoeuvres yet the damping remains
effective in improving yaw response in other circumstances such as a steering flick.
[0008] The magnitude of the damping component preferably generally increases over a range
of steering velocity values bounded by a first velocity and a second, higher, velocity.
Thus, as the steering mechanism angular velocity is increased more damping is introduced.
The portion of the steering mechanism may comprise a steering column and the first
velocity may correspond to zero column velocity. The second velocity may correspond
to the maximum expected column velocity or some other arbitrarily selected value.
Alternatively, a deadband may be provided whereby the damping component value remains
at or about zero over a range of velocities bounding zero velocity. The width of this
deadband may be varied in use, and may for example be varied as a function of vehicle
speed or another measured parameter.
[0009] The magnitude of the damping component may generally increase linearly as a function
of column velocity over the whole or a part of the range of values. Thus, the value
of the damping component may become generally higher as the angular velocity of the
steering wheel increases. However, a non-linear relationship may exist between velocity
of the steering wheel and the damping component value.
[0010] In the preferred arrangement the rate of increase of the magnitude of the damping
component between the first and second values preferably decreases as a function of
applied torque. The damping component, in one arrangement, may be produced by generating
a scaling value that is a function of torque, generating an intermediate damping value
that is a function of column velocity, and multiplying the two values together to
produce the damping component.
[0011] The scaling value may vary from a maximum value at zero applied torque to a minimum
value at a predetermined maximum applied torque. In this case, for torque values at
or above the maximum then a zero valued damping component will be produced.
[0012] The scaling value may be adapted to be substantially zero valued over a range of
measured torque values bounding zero torque. This provides a deadband either side
of zero torque about which for a given steering wheel velocity a maximum damping component
is produced, improving steering feel for high speed on centre manoeuvres.
[0013] In a further refinement the width of the deadband may be varied as a function of
the speed of the vehicle to which the steering system is fitted. A measurement of
vehicle speed may therefore be provided to a third input of the signal processor.
[0014] The torque demand signal may include an assistance torque signal that is a function
of torque in the steering mechanism. The assistance torque signal may generally increase
with increasing torque applied by the driver. The signal processor may be adapted
to produce the torque demand signal by combining the damping component with the assistance
torque signal. Preferably the damping component is subtracted from the assistance
torque signal.
[0015] The assistance torque signal may be a function of other variables such as vehicle
speed.
[0016] The signal processor may calculate the value of the damping component for any given
combination of torque and steering wheel velocity from entries in a look-up table.
In this case, each or specific combinations of steering velocity and driver input
torque will access a specified value stored in the table.
[0017] In a preferred alternative, the value of the damping component may be derived by
entering the velocity, torque and optionally vehicle speed values into a suitable
equation.
[0018] Whilst the provision of a damping component that is a function of torque as well
as angular velocity of the steering column provides appropriate levels of damping
during "hands-on" slalom manoeuvres it can, in certain circumstances, induce unwanted
torque variations in the steering column shaft. For example, when a high frequency
driver applied torque is generated, or the column kicks back due to impacts on the
road wheels, the torque dependent damping component can interact with the applied
torque setting up an unpleasant oscillation. Thus, the driver applied torque can affect
the damping torque which in turn affects the driver applied torque and so on.
[0019] In a refinement, to ameliorate such an effect the damping component may be filtered
to remove high frequency variations in the damping component caused by high frequency
changes in the column torque. Thus, the system may include limiting means adapted
to limit the rate of change of the damping component due to corresponding changes
in column torque to a predetermined maximum rate.
[0020] Preferably, the rate limiting means may comprise a filter. This may comprise a lower
pass filter, when in one arrangement may have a cut-off frequency of approximately
3Hz (Hertz).
[0021] In a most convenient arrangement, where the damping component comprises the product
of a scaling value that is a function of torque and an intermediate damping value
that is a function of the column velocity, the limiting means may be arranged to limit
the rate of change of the scaling value over time. The scaling value may be low-pass
filtered prior to multiplication by the intermediate damping value to generate the
damping component.
[0022] The low-pass filter may be a frequency domain filter but may be of any known kind,
typically a discrete digital filter implemented on a microprocessor. Of course, any
processing of the scaling value which limits the maximum rate of change of the scaling
value over time could be employed.
[0023] There will now be described, by way of example only, one embodiment of the present
invention with reference to the accompanying drawings of which:
Figure 1 is a schematic diagram of an electric power assisted steering system in accordance
with the present invention;
Figure 2 is a block diagram illustrating the functional steps undertaken within the signal
processing unit of the system of Figure 1;
Figure 3 illustrates the relationship between the torque applied by the driver and the assistance
torque value generated;
Figure 4 illustrates the relationship between the damping component and the column velocity;
Figure 5 illustrates the relationship between the value of the damping component and driver
applied torque; and
Figure 6 is a block diagram illustrating an alternative set of functional steps undertaken
with the signal processing unit of the system of Figure 1.
[0024] An electric power assisted steering system is illustrated in Figure 1 of the accompanying
drawings. The system comprises an electric motor 1 which acts upon a drive shaft 2
through an (optional) gearbox 3. The drive shaft 2 terminates with a worm gear 4 that
co-operates with a wheel provided on a portion of a steering column 5 or a shaft operatively
connected to the steering column.
[0025] The steering column 5 carries a torque sensor 6 that is adapted to measure the torque
carried by the steering column that is produced by the driver of the vehicle as the
steering wheel (not shown) and hence steering column is turned against the resisting
force provided by the vehicles road wheels (also not shown). The output signal T from
the torque sensor 6 is fed to a first input of a signal processing unit 7.
[0026] An angular velocity sensor is also provided on the steering column shaft. As shown
in Figure 1 this is an integral part of the torque sensor 6. This produces an output
signal indicative of the angular velocity ω of the shaft. The output from the velocity
sensor is fed to a second input of the signal processing unit 7. This may comprise
a electronic processor unit or other electronic circuitry.
[0027] The signal processing unit 7 acts upon the two input signals to produce, as its output,
a torque demand signal 8 that is passed to a motor controller 9. The motor controller
9 converts the torque demand signal 8 into drive currents for the electric motor 1.
[0028] The value of the torque demand signal 8 corresponds to the amount of assistance torque
to be applied to the steering column by the electric motor 1. The value will vary
from a minimum value corresponding to maximum output torque for the motor in one sense,
through zero torque when the demand signal is zero, to a maximum motor torque of the
opposite sense.
[0029] The motor controller 9 receives as its input the torque demand signal and produces
currents that are fed to the motor to reproduce the desired torque at the motor drive
shaft 2. It is this assistance torque applied to the steering column shaft 5 that
reduces the effort needed by the driver to turn the wheel.
[0030] Figure 2 illustrates the functional steps undertaken by the signal processing unit
7 in producing the torque demand signal 8. It can be seen that the torque demand signal
8 is produced as two components: an assistance torque signal 10 and a damping component
11. These two components 10,11 are combined within the signal processor to form the
final torque demand signal 8.
[0031] The assistance torque signal 10 is derived as a function of the torque in the steering
column as measured by the torque sensor 6. The relationship between the measured torque
and the assistance signal is essentially linear as shown in the plot of Figure 3.
However, other possible relationships may be used to map the torque to the assistance
signal. In both cases, as torque increases the magnitude of the assistance signal
increases. It will also be understood that the assistance torque signal 10 may be
dependent upon other parameters such as vehicle speed if required. In that case it
is typical to reduce the value of the assistance torque signal 10 at high speeds to
enhance stability and increase it at very low speeds to ease parking manoeuvres.
[0032] The damping component is produced as a function of both the measured torque and column
velocity. As shown in figure 4, an intermediate damping signal 12 is produced as a
linear function of column velocity. The intermediate damping signal 12 increases in
value from zero at zero column velocity to a maximum value at a predetermined column
velocity (typically 2 revolutions per second). Of course, for different applications
both the peak damping value and the velocity corresponding to this value may be varied.
Above 2 revolutions per second the intermediate damping signal value remains constant.
A deadband is also provided around zero velocity which may be of variable width. Thus,
the value of the damping component remains at or about zero for a range of velocities
within the deadband.
[0033] The intermediate damping signal 12 is then modified as a function of torque by calculating
a scaling value 13. As shown in Figure 5 of the accompanying drawings, the scaling
value 13 is a fractional value that is a function of torque carried by the steering
column. The scaling value increases from unity at zero applied torque to zero at a
predetermined threshold applied torque. A deadband is also provided whereby the scaling
value remains at or around unity for small torque values around zero torque. The width
of the deadband is preferably chosen to exceed the maximum torque that can arise due
to inertia in the system.
[0034] The intermediate signal 12 is next multiplied by the scaling factor signal 13 in
order to produce the damping component 11. Finally, the signal processor subtracts
the damping component 11 from the assistance torque signal 10 to produce the torque
demand signal 8 used to drive the electric motor 1.
[0035] A refinement is illustrated in the block diagram of Figure 6. In this arrangement,
three input values are passed to the signal processor: column velocity ω, column angular
position Ncol and column torque T.
[0036] As in the arrangement of Figure 2, the measured torque is used to produce an assistance
torque signal 10 in the manner illustrated in Figure 3 of the accompanying drawings.
[0037] The damping component is also produced as a function of both the measured torque
and the column velocity. However, in this arrangement two main differences can be
noted as follows:
(a) The torque value T is processed to produce a scaling value 13 as for the first
embodiment but this is subsequently passed through a low-pass filter 14 to remove
any high-frequency torque dependent variations in value prior to combining with the
intermediate signal 12 to produce the damping component; and
(b) The intermediate signal 12 is produced as a function of both column velocity ω
and column absolute angle position Ncol to introduce a position dependent deadband
15 about the straight ahead position of the steering column.
[0038] The low-pass filter 14, which is this embodiment has a cut-off frequency of 3Hz,
removes the effect of high speed variation in driver applied torque combing with subsequent
high frequency variations in damping component. In certain circumstances, without
the presence of the low-pass filter, unwanted vibrations may be produced in the steering
column.
[0039] The filter may be implemented in a variety of ways which will be readily appreciated
by the person skilled in the art. A suitable frequency domain filter may be of the
form:

where X is the filtered scaling value.
1. An electric power assisted steering assembly comprising a steering mechanism 5 which
operatively connects a steering wheel to the roadwheels of a vehicle, a torque sensing
means 6 adapted to produce a first output signal indicative of the torque T carried
by a portion of the steering mechanism 5, a means for producing a second output signal
indicative of the angular velocity of the portion of the steering mechanism, an electric
motor 1 operatively connected to the steering mechanism 5, a signal processing unit
7 adapted to receive the two signals and to produce a torque demand signal 8 representative
of a torque to be applied to the steering mechanism 5 by the motor 1, and a motor
drive stage adapted to provide a drive current to the motor 1 responsive to the torque
demand signal 8, and characterised in that the torque demand signal 8 includes a damping component 11 that is dependent upon
both the first output signal and the second output signal.
2. An electric power assisted steering assembly according to claim 1, in which the portion
of the steering mechanism comprises a steering column and the magnitude of the damping
component 11 generally increases over a range of steering column velocity values bounded
by a first velocity and a second, higher, velocity.
3. An electric power assisted steering assembly according to claim 2, in which the first
velocity corresponds to zero column velocity.
4. An electric power assisted steering assembly according to claim 2, in which a deadband
is provided whereby the damping component value remains at or about zero over a range
of velocities bounding zero velocity.
5. An electric power assisted steering assembly according to claim 4, in which the width
of the deadband is varied in use as a function of vehicle speed.
6. An electric power assisted steering assembly according to any one of claims 2 to 4,
in which the magnitude of the damping component 11 generally increases linearly as
a function of column velocity over the whole or a part of the range of values.
7. An electric power assisted steering assembly according to any one of claims 2 to 6,
in which the rate of increase of the magnitude of the damping component between the
first and second values decreases as a function of applied torque.
8. An electric power assisted steering assembly according to any preceding claim, in
which the damping component is produced by generating a scaling value 13 that is a
function of torque, generating an intermediate damping value 12 that is a function
of column velocity, and multiplying the two values together to produce the damping
component 11.
9. An electric power assisted steering assembly according to claim 8, in which the scaling
value varies from a maximum value at zero applied torque to a minimum value at a predetermined
maximum applied torque.
10. An electric power assisted steering assembly according to claim 8 or claim 9, in which
the scaling value 13 is substantially zero valued over a range of measured torque
values bounding zero torque.
11. An electric power assisted steering assembly according to any preceding claim, in
which the torque demand signal 8 includes an assistance torque signal 10 that is a
function of torque in the steering mechanism.
12. An electric power assisted steering assembly according to claim 11, in which the signal
processing unit 7 is adapted to produce the torque demand signal by combining the
damping component 11 with the assistance torque signal 10.
13. An electric power assisted steering assembly according to any preceding claim, in
which the damping component is filtered to remove high frequency variations in the
damping component caused by high frequency changes in the column torque.
14. An electric power assisted steering assembly according to claim 13, in which a limiting
means 14 is provided that is adapted to limit the rate of change of the damping component
due to corresponding changes in column torque to a predetermined maximum rate.
15. An electric power assisted steering assembly according to claim 14, in which the rate
limited means comprises a lower pass filter 14.
16. An electric power assisted steering assembly according to any one of claims 13 to
15 when dependent from claim 6, in which the limiting means is arranged to limit the
rate of change of the scaling value over time.
17. An electric power assisted steering assembly according to claim 16, in which the scaling
value is low-pass filtered prior to multiplication by the intermediate damping value
to generate the damping component.